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There Is No Logical Negation Here, But There Are Alternatives: Modeling Conversational Negation with Distributional Semantics

机译:这里没有逻辑否定,但有其他选择:使用分布语义建模会话否定

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Logical negation is a challenge for distributional semantics, because predicates and their negations tend to occur in very similar contexts, and consequently their distributional vectors are very similar. Indeed, it is not even clear what properties a “negated” distributional vector should possess. However, when linguistic negation is considered in its actual discourse usage, it often performs a role that is quite different from straightforward logical negation. If someone states, in the middle of a conversation, that “ This is not a dog ,” the negation strongly suggests a restricted set of alternative predicates that might hold true of the object being talked about. In particular, other canids and middle-sized mammals are plausible alternatives, birds are less likely, skyscrapers and other large buildings virtually impossible. Conversational negation acts like a graded similarity function, of the sort that distributional semantics might be good at capturing. In this article, we introduce a large data set of alternative plausibility ratings for conversationally negated nominal predicates, and we show that simple similarity in distributional semantic space provides an excellent fit to subject data. On the one hand, this fills a gap in the literature on conversational negation, proposing distributional semantics as the right tool to make explicit predictions about potential alternatives of negated predicates. On the other hand, the results suggest that negation, when addressed from a broader pragmatic perspective, far from being a nuisance, is an ideal application domain for distributional semantic methods.
机译:逻辑否定是分布语义的一个挑战,因为谓词及其否定词倾向于在非常相似的上下文中发生,因此它们的分布向量非常相似。实际上,甚至不清楚“负”分布向量应具有什么性质。但是,在实际的话语用法中考虑语言否定时,它通常会扮演与直接逻辑否定完全不同的角色。如果有人在对话过程中说“这不是狗”,则该否定强烈暗示了一组有限的备选谓词,这些谓词可能适用于所讨论的对象。特别是,其他犬科动物和中型哺乳动物是可行的选择,鸟类的可能性较小,摩天大楼和其他大型建筑物实际上是不可能的。会话否定的作用类似于分级的相似度函数,其分布语义可能擅长捕获。在本文中,我们为会话否定的名义谓词引入了一个大的替代可信度等级数据集,并且我们证明了分布语义空间中的简单相似性非常适合主题数据。一方面,这填补了对话否定文献中的空白,提出了分布语义学作为对否定谓词的潜在替代方案做出明确预测的正确工具。另一方面,这些结果表明,如果从更广泛的务实角度解决否定问题,那么它就不是分配麻烦的理想应用领域了。

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